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How Cations Can Assist DNase I in DNA Binding and Hydrolysis

机译:阳离子如何在DNA结合和水解中协助DNase I

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DNase I requires Ca2+ and Mg2+ for hydrolyzing double-stranded DNA. However, the number and the location of DNase I ion-binding sites remain unclear, as well as the role of these counter-ions. Using molecular dynamics simulations, we show that bovine pancreatic (bp) DNase I contains four ion-binding pockets. Two of them strongly bind Ca2+ while the other two sites coordinate Mg2+. These theoretical results are strongly supported by revisiting crystallographic structures that contain bpDNase I. One Ca2+ stabilizes the functional DNase I structure. The presence of Mg2+ in close vicinity to the catalytic pocket of bpDNase I reinforces the idea of a cation-assisted hydrolytic mechanism. Importantly, Poisson-Boltzmann-type electrostatic potential calculations demonstrate that the divalent cations collectively control the electrostatic fit between bpDNase I and DNA. These results improve our understanding of the essential role of cations in the biological function of bpDNase I. The high degree of conservation of the amino acids involved in the identified cation-binding sites across DNase I and DNase I-like proteins from various species suggests that our findings generally apply to all DNase I-DNA interactions.
机译:DNase I需要Ca2 +和Mg2 +才能水解双链DNA。但是,DNase I离子结合位点的数量和位置以及这些抗衡离子的作用仍然不清楚。使用分子动力学模拟,我们显示牛胰腺(bp)DNase I包含四个离子结合袋。它们中的两个牢固地结合了Ca2 +,而其他两个位点则协调Mg2 +。重新审视包含bpDNase I的晶体结构,为这些理论结果提供了有力的支持。一个Ca2 +可稳定DNase I的功能结构。 Mg2 +在bpDNase I催化口袋附近的存在加强了阳离子辅助水解机制的构想。重要的是,泊松-玻耳兹曼(Poisson-Boltzmann)型静电势计算表明,二价阳离子共同控制bpDNase I和DNA之间的静电匹配。这些结果提高了我们对阳离子在bpDNase I生物学功能中必不可少的作用的理解。涉及各种物种的DNase I和DNase I样蛋白中已确定阳离子结合位点的氨基酸高度保守,表明我们的发现通常适用于所有DNase I-DNA相互作用。

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